雷氏膜上皮细胞的钠选择性。

Q1 Biochemistry, Genetics and Molecular Biology BMC Physiology Pub Date : 2011-02-01 DOI:10.1186/1472-6793-11-4
Muneharu Yamazaki, Kyunghee X Kim, Daniel C Marcus
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引用次数: 9

摘要

背景:雷氏膜对钠的吸收被认为有助于耳蜗内淋巴体积的稳态。先前的研究表明,吸收性上皮电流可被阿米洛利和苯甲胺阻断。这些药物最常见的靶点是上皮钠通道(ENaC),它由α-、β-和γ-ENaC三个亚基组成。然而,其他选择性较低的阳离子通道也被观察到对苯甲胺和阿米洛利敏感。本研究的目的是确定Reissner's膜上皮细胞是否可以通过阿米洛利和苯氨敏感的电致通路支持副感觉K+吸收。结果:我们利用基因阵列(GEO GSE6196)、RT-PCR和全细胞膜片钳技术检测了候选阳离子通道的分子和功能表达。Reissner’s膜转录本表达分析未检测到阿米洛利敏感的酸感离子通道(ASIC1a、ASIC2a、ASIC2b)和环核苷酸门控通道(CNGA1、CNGA2、CNGA4、CNGB3)。相比之下,α-,β-和γ-ENaC均存在于Reissner膜中。在全细胞膜片钳记录中观察到苯甲胺敏感阳离子电流的选择性,在无Cl条件下,阳离子是唯一的渗透物种。电流由Na+携带,而不是K+携带,并且Li+在Reissner膜中的渗透性大于Na+。用不透性阳离子NMDG+完全取代浴液中的Na+,导致与Na+浴液中的苯甲酰胺相同的内向电流。结论:这些结果与赖斯纳膜的阿米洛利/苯甲胺敏感吸收通量是一致的,该吸收通量是由一个高Na+选择性通道介导的,与αβγ-ENaC具有几个共同的关键特征。因此,阿米洛利敏感通路仅在该上皮中吸收Na+,而不提供从scala介质中流出的副感觉K+途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Sodium selectivity of Reissner's membrane epithelial cells.

Background: Sodium absorption by Reissner's membrane is thought to contribute to the homeostasis of the volume of cochlear endolymph. It was previously shown that the absorptive transepithelial current was blocked by amiloride and benzamil. The most commonly-observed target of these drugs is the epithelial sodium channel (ENaC), which is composed of the three subunits α-,β- and γ-ENaC. However, other less-selective cation channels have also been observed to be sensitive to benzamil and amiloride. The aim of this study was to determine whether Reissner's membrane epithelial cells could support parasensory K+ absorption via amiloride- and benzamil-sensitive electrogenic pathways.

Results: We determined the molecular and functional expression of candidate cation channels with gene array (GEO GSE6196), RT-PCR, and whole-cell patch clamp. Transcript expression analysis of Reissner's membrane detected no amiloride-sensitive acid-sensing ion channels (ASIC1a, ASIC2a, ASIC2b) nor amiloride-sensitive cyclic-nucleotide gated channels (CNGA1, CNGA2, CNGA4, CNGB3). By contrast, α-,β- and γ-ENaC were all previously reported as present in Reissner's membrane. The selectivity of the benzamil-sensitive cation currents was observed in whole-cell patch clamp recordings under Cl--free conditions where cations were the only permeant species. The currents were carried by Na+ but not K+, and the permeability of Li+ was greater than that of Na+ in Reissner's membrane. Complete replacement of bath Na+ with the inpermeable cation NMDG+ led to the same inward current as with benzamil in a Na+ bath.

Conclusions: These results are consistent with the amiloride/benzamil-sensitive absorptive flux of Reissner's membrane mediated by a highly Na+-selective channel that has several key characteristics in common with αβγ-ENaC. The amiloride-sensitive pathway therefore absorbs only Na+ in this epithelium and does not provide a parasensory K+ efflux route from scala media.

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来源期刊
BMC Physiology
BMC Physiology Biochemistry, Genetics and Molecular Biology-Physiology
CiteScore
9.60
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0.00%
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0
期刊介绍: BMC Physiology is an open access journal publishing original peer-reviewed research articles in cellular, tissue-level, organismal, functional, and developmental aspects of physiological processes. BMC Physiology (ISSN 1472-6793) is indexed/tracked/covered by PubMed, MEDLINE, BIOSIS, CAS, EMBASE, Scopus, Zoological Record and Google Scholar.
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